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首页> 外文期刊>The Journal of Chemical Physics >Modeling light-induced charge transfer dynamics across a metal-molecule-metal junction: Bridging classical electrodynamics and quantum dynamics
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Modeling light-induced charge transfer dynamics across a metal-molecule-metal junction: Bridging classical electrodynamics and quantum dynamics

机译:模拟跨金属-分子-金属结的光感应电荷转移动力学:桥接经典电动力学和量子动力学

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We develop a numerical approach for simulating light-induced charge transport dynamics across a metal-molecule-metal conductance junction. The finite-difference time-domain method is used to simulate the plasmonic response of the metal structures. The Huygens subgridding technique, as adapted to Lorentz media, is used to bridge the vastly disparate length scales of the plasmonic metal electrodes and the molecular system, maintaining accuracy. The charge and current densities calculated with classical electrodynamics are transformed to an electronic wavefunction, which is then propagated through the molecular linker via the Heisenberg equations of motion. We focus mainly on development of the theory and exemplify our approach by a numerical illustration of a simple system consisting of two silver cylinders bridged by a three-site molecular linker. The electronic subsystem exhibits fascinating light driven dynamics, wherein the charge density oscillates at the driving optical frequency, exhibiting also the natural system timescales, and a resonance phenomenon leads to strong conductance enhancement. (C) 2014 AIP Publishing LLC.
机译:我们开发了一种数值方法来模拟光诱导的跨金属-分子-金属电导结的电荷传输动力学。时域有限差分法用于模拟金属结构的等离子体响应。惠更斯亚网格技术适用于Lorentz介质,用于弥合等离激元金属电极和分子系统的截然不同的长度尺度,从而保持精度。用经典电动力学方法计算出的电荷和电流密度被转换为电子波函数,然后通过海森堡运动方程式通过分子连接子传播。我们主要关注理论的发展,并通过一个简单的系统的数值插图来举例说明我们的方法,该系统由两个由三个位点的分子连接基桥接的银圆柱体组成。电子子系统表现出令人着迷的光驱动动力学特性,其中电荷密度以驱动光频率振荡,还表现出自然的系统时标,并且共振现象导致电导率大大提高。 (C)2014 AIP Publishing LLC。

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